[0001] This invention relates to recombination pulsed gas lasers. Such recombination lasers
are a class of gas lasers and derive most of the excitation of lasing action from
recombination of ions following ionisation of a gas by an electrical discharge. Descriptions
of recombination lasers are found for example in:- V V Zhukov, E L Latush, V S Mikhalenskin,
M F Sem, Sov J Quantum Electron 7, 704 (1977); and descriptions of TEA lasers are
in:- F Collier, B Lacour, M Maillet, M Michon, J Appl Phys
52 (10), Oct 1981; and RSRE Memo 4384, authors R C Hollins, D A Orchard, and A S Swanson,
available from DRIC UK.
[0002] A typical recombination laser comprises a cooled tube through which a gas mixture,
eg of He-Xe, or xenon, is flowed. At each end of the tube are electrodes connected
to capacitors. Adjacent the tube ends are mirrors, one a completely reflecting mirror,
the other a partial reflector forming a light output window. Rapid discharging of
the capacitors causes ionisation of the laser gas in the tube to energy levels above
a lasing energy level. After the electrical discharge pulse ends, the excited gas
recombines and emits light. For a He-Xe gas this light has lines at 2.03, 2.65, 3.43,
and 3.65µm, ie in the so called mid infra red wavelengths.
[0003] One type of pulsed gas laser is described in Patent Abstracts of Japan Vol 15, No
258 (E-1084) 28-06-1991 and Japan-A-3083384. Long electrode lifetime is provided by
connecting the cathode of a diode to the anode of the main discharge electrode, and
the anode of the diode to the cathode of the discharge electrode. The purpose of the
diode is to prevent arc generation.
[0004] The present invention improves the amount of laser light emitted by a recombination
laser after the electrical discharge pulse has ended.
[0005] The invention may also improve the pulse repetition frequency (prf) from a typical
value of less than 10Hz to about 20kHz in some constructions of gas lasers.
[0006] According to this invention the laser light output of a recombination laser is improved
by preventing electrical current oscillations in the laser gas after the initial electrical
discharge pulse has ended, by use of rectifying diodes in the electrical circuit supplying
the discharge pulse.
[0007] According to this invention a recombination pulsed gas laser comprises:-
a laser tube containing a laser gaseous medium, electrodes for causing an electrical
discharge in the laser medium,
a highly reflecting mirror and laser output coupler adjacent either end of the laser
tube to define a laser cavity, electrical circuit means for supplying an electrical
pulse to the electrodes,
Characterised by a diode arranged in series with the electrodes and a diode arranged
in parallel with the series combination of the electrodes and series connected diode,
to prevent electrical current within the laser tube after the end of the initial electrical
pulse.
[0008] According to an aspect of this invention the prf is increased by use of a narrow
bore quartz laser tube and sub-atmospheric gas pressure.
[0009] The invention will now be described by way of example only with reference to the
accompanying drawings of which:-
Figure 1 is a cross sectional view of a He-Xe gas recombination laser,
Figure 2 is a block diagram of the laser of Figure 1 showing electrical control circuitry,
Figures 3 to 6 are wavetraces showing laser output for different control circuitry
(figures 3, 4 and 5 correspond to examples useful for the understanding of the invention).
Figure 7 is a block diagram of a TEA laser showing electrical control circuitry, (example
useful for the understanding of the invention).
[0010] As shown in Figure 1 a recombination laser comprises a quartz tube 1 surrounded by
a jacket 2 with an annular space between the tube 1 and jacket 2. Inlet 3 and outlet
4 end structures support and locate the tube 1 and jacket. Cooling water inlet 5 and
outlet pipes 6 are formed on the jacket 2 so that coolant may be flowed through the
annular space and keep the tube 1 at a desired temperature.
[0011] The inlet end structure 3 carries inner flanges 7 which fix to the jacket 2, locate
o-ring seals 8 on the tube 1, contain flange coolant pipes 9, 10, and support probe-like
pointed electrodes 24 at the end of the tube 1. The inlet end structure 3 also includes
an inlet chamber 11 into which gas is fed via an inlet pipe 12, and outer flanges
13 which support and locate a high reflectance gold coated copper mirror 14. The inlet
end structure 3 also carries two capacitors 15 which form part of the exciting circuit
shown more clearly in Figure 2.
[0012] The outlet end structure 4 carries inner flanges 16 which fix to the jacket 1, locate
o-ring seals 17 on the tube 1, contain flange coolant pipes 18, 19, and support probe-like
pointed Ta electrodes 25 at the end of the tube 1. The outlet end structure 4 also
includes an outlet chamber 20 from which gas is removed via an outlet pipe 21, and
outer flanges 22 which support and locate a partly reflecting silicon mirror 23 forming
a laser output coupler.
[0013] For a gas mixture of 250:1 He:Xe a typical inner laser tube dimension is 4mm, cavity
length (distance between mirror 14 and coupler 23) is 60cm, gas pressure 300mbar.
These values are examples only; the device operates over a wide range of parameter
values.
[0014] Figure 2 shows the electrical control circuit for the laser of Figure 1. A DC supply
of 5kvolts supplies power via a diode D4 and a inductances 31, 26 to a point A between
two capacitors C1, C2 each of typically 1nF value. Between the DC supply lines is
a thyratron 27. Connected in parallel with the two capacitors C1, C2 are three lines
28, 29, 30. In one line 28 is the laser and a diode D1 in series; in the second line
29 is a diode D2; and in the third line 30 is an inductance L and diode D3 in series.
[0015] In operation to obtain a laser output, the circuit of Figure 2 is supplied with DC
power at 5 kvolts. This results in voltage oscillations along the supply lines, inductance,
diode D4 and capacitor C1 and charges up point A between the capacitors to 10kvolts.
The outer sides of the capacitors C1, C2 remain at zero potential due to conduction
through the inductance L. When the capacitors C1, C2 are fully charged, the thyratron
27 is caused to short circuit. This causes capacitor C1 to invert its voltage and
a doubling of the voltage appearing across the laser, ie to 20kV. The capacitors C1,
C2 discharge across the laser electrodes. As a result the gas is raised to an ionised
state above a lasing level. The discharging pulse lasts for less than 1µs and reduces
to zero current as shown in the upper traces of Figures 3-6.
[0016] When the discharge pulse has finished the excited gas begins to de-excite and lase.
After termination of the discharge pulse there still exist significant amounts of
electrical energy in the circuit which need to be dissipated. At this point in time
the gas is still partly ionised and is conductive. This, in the absence of diodes,
allows passage of current through the gas with a consequential reduction or even extinction
of lasing activity.
[0017] Such an event is shown in Figure 3, lower trace, where lasing action is reduced to
zero by a reverse current through the gas immediately after termination of the discharge
pulse, seen in the upper trace.
[0018] Figure 4 shows in an example useful for the understanding of the invention operation
of the laser with just diode D2 in the circuit of Figure 2, ie without D1 and D3.
The amount of lasing action is improved from that of Figure 3. Figure 5 shows in an
example useful for the understanding of the invention the effect of using diode D1
only, with D2 and associated line, and diode D3 missing. Again an improved laser action
is seen; the laser action lasts longer but at a lower level than for Figure 4. Figure
6 shows the effect of using diodes D1, D2, in circuit; the amplitude and duration
of laser pulse is improved over that obtained for the circuit of Figure 3.
[0019] Suitable diodes D1, D2, D3 are silicon diodes type UF5408 in series parallel arrangement
(eg RS Components catalogue number 264-311).
[0020] For a laser using He-Xe gas, laser output is improved. Using the design of Figure
1, a high prf can be used with water cooling, and little or no gas flow through the
laser tube; ie the laser can be operated as a sealed system. This enables small, compact,
lasers to be used in systems where gas recirculation is difficult or impossible.
[0021] In addition to the benefit of reducing current oscillations in the laser gas, the
use of diodes may improve overall efficiency by retaining electrical energy stored
in the circuit in a form which can contribute to the next discharge pulse.
[0022] The invention may also be applied to recombination lasers having a much larger diameter
laser tube and flowing gases. Improvement in laser outputs for such a larger laser
tube are similar to those illustrated in Figures 4 to 6.
[0023] Gases other than Xe may be used, eg strontium with helium in a mixture of typically
He:Sr of about 1000:1.
[0024] The diodes used in the invention may also be applied to transverse excited atmospheric
(TEA) lasers: details are given below to provide an example useful for understanding
the invention. As shown in Figure 7 a TEA laser 40 has a large diameter laser tube
41 containing convex electrodes 42, 43 about 50cm long, 0.5cm wide and spaced about
2.5cm apart. Also inside the laser tube 41 along both sides of the convex electrodes
42, 43 are a series of pointed electrode pairs 44, 45, 46, 47 each pair being associated
with capacitors 48, 49. Mirrors (not shown) at each end of the tube 41 define a laser
cavity. The laser tube 41 encloses a gas mixture of He:Xe at a typical pressure in
the range 200mbar to 20bar.
[0025] Control circuitry includes a 10 to 30kV supply connected via a resistance R1, capacitor
C3 and diode D5 to the upper electrodes 42, 44, 46 in the laser tube 41. The lower
electrode 43 in the laser tube 41 connects to an earth line. A resistance R2 connects
across supply lines 50, 51 into the laser tube 41. A spark gap 52, or other switch
eg thyratron, connects between the lines 50, 51.
[0026] In operation with the switch 52 open circuit capacitor C3 is charged up by the supply.
No electrical current flows through the laser 40 because of the diode D5. When the
switch 52 is closed the voltage on capacitor C3, 10 to 3OkV, appears across the laser
electrodes 42 to 47. This results in a sparking across the side electrodes 44, 45,
46, 47 with ionisation of the laser gas. Additionally the side capacitors 48. 49 become
charged. A discharge occurs between the main laser electrodes 42. 43 causing emission
of laser light. The function of diode D5 is to prevent reverse electrical currents
and therefore prevent current oscillations in the laser gas. This action enhances
recombination laser output.
[0027] The diodes of the invention may also be applied to copper (Cu) gas lasers (not shown);
details are given as a further example useful in understanding the invention. These
typically comprise an insulating ceramic laser tube containing lumps of Cu on its
inner surface, and closed at its ends by windows. Electrodes at each end of the laser
tube act to apply a voltage to He gas contained within the tube. Exterior of the tube
are fully and partly reflecting mirrors forming a laser cavity and laser output coupler.
[0028] Such a Cu laser emits laser light when a very short voltage ramp pulse is applied
to the electrodes. As the electrical discharge drops, the laser ceases to emit light.
Electrical oscillations can continue in the tube but do not result in further lasing.
Using the circuitry of Figure 2, these electrical oscillations are damped and their
associated energy retained in the charging circuitry ready for the next discharge.
The net effect of this is to improve device efficiency by reducing the power supply
requirements, and offering a more portable Cu laser with smaller power supplies.
1. A recombination pulsed gas laser comprising:-
a laser tube (1) containing a laser gaseous medium,
electrodes (24, 25) for causing an electrical discharge in the laser medium,
a highly reflecting mirror (14) and laser output coupler (23) adjacent either end
of the laser tube (1) to define a laser cavity.
electrical circuit means (DC supply, D4, 31, 26, C1, C2, 27) for supplying an electrical
pulse to the electrodes (24, 25),
Characterised by a diode (D1) arranged in series with the electrodes (24, 25) and
a diode (D2) arranged in parallel with the series combination of the electrodes (24,
25) and series connected diode (D 1),
to prevent electrical current within the laser tube after the end of the initial electrical
pulse.
2. The laser of claim 1 wherein the lasing gas is Xe.
3. The laser of claim 1 wherein the lasing gas comprises Sr.
4. The laser of claim 1 wherein the gas is a mixture of He and Xe.
5. The laser of claim I wherein the laser tube is a narrow bore tube.
1. Ein gepulster Rekombinationsgaslaser, welcher aufweist:
eine Laserröhre (1) mit einem gasförmigen Lasermedium,
Elektroden (24, 25) zum Erzeugen einer elektrischen Entladung in dem Lasermedium,
einen hochreflektierenden Spiegel (14) und koppelnden Laserausgang (23) an jedem Ende
der Laserröhre (1) zur Schaffung eines Laserhohlraums,
elektrische Schaltvorrichtungen (DC-Spannungsversorgung, D4, 31, 26, C1, C2, 27) zur
Versorgung der Elektroden (24, 25) mit einem elektrischen Puls,
gekennzeichnet durch eine Diode (D1), die in Reihe mit den Elektroden (24, 25) angeordnet
ist und eine Diode (D2), die parallel mit der in Reihe geschalteten Kombination der
Elektroden (24, 25) und der in Reihe angeschlossenen Diode (D1) angeordnet ist,
um nach dem Ende des ersten elektrischen Pulses einen elektrischen Strom in der Laserröhre
zu verhindern.
2. Der Laser nach Anspruch 1, wobei das Lasergas Xe ist.
3. Der Laser nach Anspruch 1, wobei das Lasergas Sr umfaßt.
4. Der Laser nach Anspruch 1, wobei das Gas ein Gemisch aus He und Xe ist.
5. Der Laser nach Anspruch 1, wobei die Laserröhre eine Röhre mit geringem Bohrungsdurchmesser
ist.
1. Laser à gaz à impulsions à recombinaison, comprenant :
un tube laser (1) contenant un fluide gazeux à effet laser,
des électrodes (24, 25) destinées à provoquer une décharge électrique dans le fluide
à effet laser,
un miroir très réfléchissant (14) et un coupleur (23) de sortie du laser adjacents
à l'une et l'autre extrémité du tube laser (1) pour la délimitation d'une cavité laser,
et
un dispositif à circuit électrique (alimentation en courant continu, D4, 31, 26, C1,
C2, 27) destiné à transmettre une impulsion électrique aux électrodes (24, 25),
caractérisé par une diode (D1) placée en série avec les électrodes (24, 25) et
une diode (D2) placée en parallèle avec la combinaison en série des électrodes (24,
25) et de la diode connectée en série (D1),
afin qu'un courant électrique ne puisse pas circuler dans le tube laser après la fin
de l'impulsion électrique initiale.
2. Laser selon la revendication 1, caractérisé en ce que le gaz à effet laser est Xe.
3. Laser selon la revendication 1, dans lequel le gaz à effet laser contient Sr.
4. Laser selon la revendication 1, dans lequel le gaz est un mélange de He et Xe.
5. Laser selon la revendication 1, dans lequel le tube laser est un tube à trou étroit.